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Scalable Synthesis of Microsized, Nanocrystalline Zn0.9 Fe0.1 O-C Secondary Particles and Their Use in Zn0.9 Fe0.1 O-C/LiNi0.5 Mn1.5 O4 Lithium-Ion Full Cells.


ABSTRACT: Conversion/alloying materials (CAMs) are a potential alternative to graphite as Li-ion anodes, especially for high-power performance. The so far most investigated CAM is carbon-coated Zn0.9 Fe0.1 O, which provides very high specific capacity of more than 900 mAh g-1 and good rate capability. Especially for the latter the optimal particle size is in the nanometer regime. However, this leads to limited electrode packing densities and safety issues in large-scale handling and processing. Herein, a new synthesis route including three spray-drying steps that results in the formation of microsized, spherical secondary particles is reported. The resulting particles with sizes of 10-15 μm are composed of carbon-coated Zn0.9 Fe0.1 O nanocrystals with an average diameter of approximately 30-40 nm. The carbon coating ensures fast electron transport in the secondary particles and, thus, high rate capability of the resulting electrodes. Coupling partially prelithiated, carbon-coated Zn0.9 Fe0.1 O anodes with LiNi0.5 Mn1.5 O4 cathodes results in cobalt-free Li-ion cells delivering a specific energy of up to 284 Wh kg-1 (at 1 C rate) and power of 1105 W kg-1 (at 3 C) with remarkable energy efficiency (>93 % at 1 C and 91.8 % at 3 C).

SUBMITTER: Asenbauer J 

PROVIDER: S-EPMC7384102 | biostudies-literature | 2020 Jul

REPOSITORIES: biostudies-literature

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Scalable Synthesis of Microsized, Nanocrystalline Zn<sub>0.9</sub> Fe<sub>0.1</sub> O-C Secondary Particles and Their Use in Zn<sub>0.9</sub> Fe<sub>0.1</sub> O-C/LiNi<sub>0.5</sub> Mn<sub>1.5</sub> O<sub>4</sub> Lithium-Ion Full Cells.

Asenbauer Jakob J   Binder Joachim R JR   Mueller Franziska F   Kuenzel Matthias M   Geiger Dorin D   Kaiser Ute U   Passerini Stefano S   Bresser Dominic D  

ChemSusChem 20200527 13


Conversion/alloying materials (CAMs) are a potential alternative to graphite as Li-ion anodes, especially for high-power performance. The so far most investigated CAM is carbon-coated Zn<sub>0.9</sub> Fe<sub>0.1</sub> O, which provides very high specific capacity of more than 900 mAh g<sup>-1</sup> and good rate capability. Especially for the latter the optimal particle size is in the nanometer regime. However, this leads to limited electrode packing densities and safety issues in large-scale ha  ...[more]

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